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Weber Blockade Theory of Magnetoresistance Oscillations in Superconducting Strips

机译:超导带中磁阻振荡的韦伯阻挡理论

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Recent experiments on the conductance of thin, narrow superconducting strips have found periodic fluctuations, as a function of the perpendicular magnetic field, with a period corresponding to approximately two flux quanta per strip area [A. Johansson et ai, Phys. Rev. Lett. 95, 116805 (2005)]. We argue that the low-energy degrees of freedom responsible for dissipation correspond to vortex motion. Using vortex-charge duality, we show that the superconducting strip behaves as the dual of a quantum dot, with the vortices, magnetic field, and bias current respectively playing the roles of the electrons, gate voltage, and source-drain voltage. In the bias-current versus magnetic-field plane, the strip conductance displays regions of small vortex conductance (i.e., small electrical resistance) that we term "Weber blockade" diamonds, which are dual to Coulomb blockade diamonds in quantum dots.
机译:最近,对薄的,窄的超导带的电导率的实验发现,周期性波动是垂直磁场的函数,其周期对应于每个带区域大约两个磁通量量子[A]。 Johansson等,物理学。牧师95,116805(2005)]。我们认为负责耗散的低能量自由度与涡旋运动相对应。利用涡旋电荷对偶性,我们证明了超导带的行为就像一个量子点的对偶,涡流,磁场和偏置电流分别扮演着电子,栅极电压和源极-漏极电压的角色。在偏置电流与磁场平面中,带状电导显示了涡旋电导较小的区域(即小电阻),我们将其称为“韦伯阻挡”钻石,这是量子点中与库仑阻挡钻石双重的。

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